TLE4207G_17 INFINEON | Alldatasheet

Document overview

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Technical content

Features

  • Delivers up to 0.8 A continuous  Optimized for DC motor management applications  Very low current consumption in stand-by (Inhibit) mode  Low saturation voltage ; typ.1.2 V total @ 25 °C; 0.4 A  Output protected against short circuit  Error flag diagnosis  Overvoltage lockout and diagnosis  Undervoltage lockout  CMOS/TTL compatible inputs with hysteresis  No crossover current  Internal clamp diodes  Overtemperature prot ection with hysteresis and diagnosis  Enhanced power PG-DSO-Package  Green Product (RoHS compliant)  AEC Qualified

Description

The TLE4207G is a protected Dual-Half-Bridge-Driver designed specially for automotive and industrial motion control applications. The part is built using the Infineon bipolar high voltage power technology DOPL. The actuator (DC motor) can be connected di rect between the halfbridges. Operation modes forward (cw), reverse (ccw), brak e and high impedance are invoked from a standard interface. The standard enhanced power PG-DSO-14 package meets the application requirements and saves PCB-board space and costs. Furthermore the built in features like dia gnosis, over- and undervoltage-lockout, short- circuit-protection, over-temperature-protect ion and the very low quiescent current in stand-by mode will open a wide range of automotive and industrial applications. Type Ordering Code Package TLE4207G on request PG-DSO-14

Data Sheet 2 Rev. 1.2, 2017-05-19 TLE4207G Figure 1 Pin Configuration (top view) Pin Definitions and Functions Pin No. PG-DSO-14 Symbol Function

1 VS Power supply voltage;

positive reference potential for blocking capacitor 2O U T 2 Power output 2; short circuit protected; with integrated clamp diodes 3, 4, 5, 10, 11, 12 GND Ground; negative reference potential for blocking capacitor 6I N 2 Input channel 2; controls OUT2 (not inverted) 7I N H Inhibit input; low = IC in stand-by 8E F Error Flag output; open collector; low = error 9I N 1 Input channel 1; controls OUT1 (not inverted)

13 OUT1 Power output 1; short circuit protected;

with integrated clamp diodes 14 N.C. Not connected AEP02303 INH IN2 GND OUT2 IN1 GND OUT1 N.C. GND GND GND GND VS EF TLE 4207G

Data Sheet 3 Rev. 1.2, 2017-05-19 Figure 2 Block Diagram AEB02080 IN2 OUT2 XXZZ LL00 HL10 LH01 HH11 OUT1 OUT2 4207GTLE OUT1IN1INH GND Fault-Detection DRV1 DRV2 Inhibit VS INH EF IN1 IN2 6 3, 4, 5, 10, 11, 12

Data Sheet 4 Rev. 1.2, 2017-05-19 TLE4207G IN: 0 = Logic LOW OUT: Z = Output in tristate condition 1 = Logic HIGH L = Output in sink condition X = don’t care H = Output in source condition Functional Truth Table INH IN1 IN2 OUT1 OUT2 Mode

0 X X Z Z Stand-By

L L H H L H L H Brake LL CW CCW Brake HH Diagnosis EF Error no error over temperature over voltage

Data Sheet 5 Rev. 1.2, 2017-05-19

Electrical Characteristics

Note: Maximum ratings are absolute ratings; exceeding any one of these values may cause irreversible damage to the integrated circuit. Absolute Maximum Ratings Parameter Symbol Limit Values Unit Remarks min. max. Voltages Supply voltage VS – 0.3 45 V – Supply voltage VS – 1 – V t < 0.5 s; IS > – 2 A Logic input voltages (IN1; IN2; INH) VI – 5 20 V 0 V < VS < 45 V Logic output voltage (EF) VEF – 0.3 20 V 0 V < VS < 45 V Currents Output current (cont.) IOUT1-2 – – A internally limited Output current (peak) IOUT1-2 – – A internally limited Output current (diode) IOUT1-2 –1 1 A – Output current (EF) IOUT1-2 –2 5 m A – Temperatures Junction temperature Tj – 40 150 °C– Storage temperature Tstg – 50 150 °C– Thermal Resistances Junction pin Rthj-pin – 25 K/W measured to pin 5 Junction ambient RthjA –6 5 K / W –

Data Sheet 6 Rev. 1.2, 2017-05-19 TLE4207G Note: In the operating range the functions given in the circuit description are fulfilled. Operating Range Parameter Symbol Limit Values Unit Remarks min. max. Supply voltage VS VUV OFF 18 V After VS rising above VUV ON Supply voltage increasing VS – 0.3 VUV ON V Outputs in tristate Supply voltage decreasing VS – 0.3 VUV OFF V Outputs in tristate Logic input voltage (IN1; IN2; INH) VI – 2 18 V – Junction temperature Tj – 40 150 °C–

Data Sheet 7 Rev. 1.2, 2017-05-19

8 V < VS < 18 V; INH = High; IOUT1-2 = 0 A; – 40 °C < Tj < 150 °C;

unless otherwise specified Parameter Symbol Limit Values Unit Test Condition min. typ. max. Current Consumption Quiescent current IS –2 0 5 0 μA INH = LOW Quiescent current IS –2 0 3 0 μA INH = LOW; VS = 13.2 V; Tj = 25 °C Supply current IS –1 0 2 0 m A – Supply current IS –– 3 0 m A IOUT1 = 0.4 A IOUT2 = – 0.4 A Supply current IS –– 5 0 m A IOUT1 = 0.8 A IOUT2 = – 0.8 A Over- and Under Voltage Lockout UV Switch ON voltage VUV ON –6 . 5 7 . 5 V VS increasing UV Switch OFF voltage VUV OFF 5.0 6 – V VS decreasing UV ON/OFF hysteresis VUV HY –0 . 5 – V VUV ON – VUV OFF OV Switch OFF voltage VOV OFF –2 0 2 4 V VS increasing OV Switch ON voltage VOV ON 18.0 19.5 – V VS decreasing OV ON/OFF hysteresis VOV HY –0 . 5 – V VOV OFF – VOV ON

Data Sheet 8 Rev. 1.2, 2017-05-19 TLE4207G Outputs OUT1-2 Saturation Voltages Source (upper) IOUT = – 0.2 A VSAT U – 0.85 1.15 V Tj = 25 °C Source (upper) IOUT = – 0.4 A VSAT U – 0.90 1.20 V Tj = 25 °C Sink (upper) IOUT = – 0.8 A VSAT U – 1.10 1.50 V Tj = 25 °C Sink (lower) IOUT = 0.2 A VSAT L – 0.15 0.23 V Tj = 25 °C Sink (lower) IOUT = 0.4 A VSAT L – 0.25 0.40 V Tj = 25 °C Sink (lower) IOUT = 0.8 A VSAT L – 0.45 0.75 V Tj = 25 °C Total Drop IOUT = 0.2 A VSAT –1 1 . 4 V VSAT = VSAT U + VSAT L Total Drop IOUT = 0.4 A VSAT –1 . 2 1 . 7 V VSAT = VSAT U + VSAT L Total Drop IOUT = 0.8 A VSAT –1 . 6 2 . 5 V VSAT = VSAT U + VSAT L Clamp Diodes Forward voltage; upper VFU –1 1 . 5 V IF = 0.4 A Upper leakage current ILKU –– 5 m A IF = 0.4 A1) Forward voltage; lower VFL –0 . 9 1 . 4 V IF = 0.4 A Notes see page 10. Electrical Characteristics (cont’d) unless otherwise specified Parameter Symbol Limit Values Unit Test Condition min. typ. max.

Data Sheet 9 Rev. 1.2, 2017-05-19 Input-Interface Logic Inputs IN1; IN2 H-input voltage VIH –2 3 V – L-input voltage VIL 11 . 5 – V – Hysteresis of input voltage VIHY –0 . 5 – V – H-input current IIH –2 – 1 0 μA VI = 5 V L-input current IIL – 100 – 20 – 5 μA VI = 0 V Logic Input INH H-input voltage VIH –2 . 7 3 . 5 V – L-input voltage VIL 12 – V – Hysteresis of input voltage VIHY –0 . 7 – V – H-input current IIH – 100 250 μA VINH = 5 V L-input current IIL –1 0 – 1 0 μA VINH = 0 V Error-Flag EF L-output voltage level VEFL –0 . 2 0 . 4 V IEF =2 m A Leakage current IEFLK – – 1 0 μA0 V < VEF < 7 V Electrical Characteristics (cont’d) unless otherwise specified Parameter Symbol Limit Values Unit Test Condition min. typ. max.

Data Sheet 10 Rev. 1.2, 2017-05-19 TLE4207G Note: The listed characteristics are ensured over the operating range of the integrated circuit. Typical characteristics specify mean values expected over the production spread. If not otherwise specified, typical characteristics apply at TA = 25 °C and the given supply voltage. Thermal Shutdown Thermal shutdown junction temperature TjSD 150 175 200 °C– Thermal switch-on junction temperature TjSO 120 – 170 °C– Temperature hysteresis ΔT –3 0 – K – 1) Guaranteed by design. Electrical Characteristics (cont’d) unless otherwise specified Parameter Symbol Limit Values Unit Test Condition min. typ. max.

Data Sheet 11 Rev. 1.2, 2017-05-19 Figure 3 Application Circuit AES02081 SV = 12 V Watchdog Reset Q D GND I WD R CCV IN2 OUT2 XXZZ LL00 HL10 LH01 HH11 RQ 10 k Ω CQ CD 100 nF EF IN1 IN2 OUT1 OUT2 1N4001 22 F P F22 CS TLE 4268G 4207GTLE OUT1IN1INH GND Fault-Detection DRV1 DRV2 InhibitINH VS DO1 10, 11, 12 3, 4, 5, 6 2 μ μμ

Data Sheet 12 Rev. 1.2, 2017-05-19 Diagrams Quiescent current IS over Temperature Saturation Voltage of Sink VSAT L over Temperature AED02307 -50 A SΙ VS = 18 V ˚C0 50 100 150 = 13.2 VSV = 8 VSV μ Tj AED02309 -50 mV SAT LV ˚C0 50 100 150 = 800 mAOUTΙ = 14 VSV 250 500 750 1000 = 400 mAOUTΙ = 200 mAOUTΙ Tj Saturation Voltage of Source VSAT U over Temperature Total Drop at outputs VSAT over Temperature AED02308 -50 mV SAT UV Ι OUT = 800 mA ˚C0 50 100 150 250 500 750 1000 1250 1500 = 400 mAOUTΙ = 200 mAOUTΙ = 14 VSV Tj AED02310 -50 mV SAT V ˚C0 50 100 150 = 14 VSV 500 1000 1500 2000 = 800 mAOUTΙ = 400 mAOUTΙ = 200 mAOUTΙ Tj

Data Sheet 13 Rev. 1.2, 2017-05-19 Package Outlines Green Product (RoHS compliant) To meet the world-wide customer requireme nts for environmentally friendly products and to be compliant with government regulations the device is available as a green product. Green products are RoHS-Compliant (i.e Pb-free finish on leads and suitable for Pb-free soldering according to IPC/JEDEC J-STD-020). PG-DSO-14 (Plastic Green - Dual Small Outline Package) Sorts of Packing Package outlines for tubes, trays etc. are contained in our Dimensions in mmSMD = Surface Mounted Device

Revision History

Data Sheet 14 Rev. 1.2, 2017-05-19 Version Date Changes Rev. 1.1 Rev. 1.2 2008-01-08 2017-05-19 Initial version of RoHS-compliant derivate of TLE4207G Page 1: added AEC certified statement Page 1 and 13: added RoHS compliance statement and Green product feature Page 1+2: Editorial change: deleted "fully" (The term "fully protected" often leads to misunderstandings as it is unclear with respect to which parameters). Page 1 and 13: Package changed to RoHS compliant version Page 14 and 15: added Revision History, updated Legal Disclaimer Removal of package suffix: PG-DSO-14-22 replaced by PG-DSO-14

81726 Munich, Germany

© 5/19/17 Infineon Technologies AG All Rights Reserved. Legal Disclaimer The information given in this document shall in no event be regarded as a guarantee of conditions or characteristics. With respect to any examples or hints given herein, any typical values stated herein and/or any information regarding the application of the device, Infineon Technologies hereby disclaims any and all warranties and liabilities of any kind, including without limitation, warranties of non-infringement of intellectual property rights of any third party. Information For further information on technology, delivery terms and conditions and prices, please contact the nearest Infineon Technologies Office (www.infineon.com). Warnings Due to technical requirements, components may contain dangerous substances. For information on the types in question, please contact the nearest Infineon Technologies Office. Infineon Technologies components may be used in life-support devices or systems only with the express written approval of Infineon Technologies, if a failure of such components can reasonably be expected to cause the failure of that life-support device or system or to affect the safety or effectiveness of that device or system. Life support devices or systems are intended to be implanted in the human body or to support and/or maintain and sustain and/or protect human life. If they fail, it is reasonable to assume that the health of the user or other persons may be endangered.